DocumentCode
757708
Title
Dependency of Energy-, Position- and Depth of Interaction Resolution on Scintillation Crystal Coating and Geometry
Author
Lerche, Christoph W. ; Ros, Ana ; Herrero, Vicente ; Esteve, Raúl ; Monzó, José M. ; Sebastiá, Ángel ; Sánchez, Filomeno ; Munar, Antoni ; Benlloch, José M.
Author_Institution
Dept. of Electr. Eng., Polytech. Univ. of Valencia, Valencia
Volume
55
Issue
3
fYear
2008
fDate
6/1/2008 12:00:00 AM
Firstpage
1344
Lastpage
1351
Abstract
Options for optimizing the energy and spatial resolution of gamma-ray imaging detectors based on thick, monolithic crystals shaped like flat-topped pyramids were studied. Monte Carlo simulations were made of the scintillation light transport for evaluating the effect of four parameters on the energy resolution, the spatial resolutions, and the depth of interaction (DOI) resolution of the gamma-ray imaging detector. These four parameters are: the reflectivity of the surface coating; the scatter mean free path; the absorption mean free path of the scintillation light; and the angle that defines the inclination of the sides of the pyramidal frustum. In real detectors, the values for the mean free paths for optical photons are normally not known. We estimated these by comparing MC simulations of detector resolutions to measurements for three gamma-ray imaging detectors with LYSO and LSO from different suppliers and with different surface coatings and geometries. The gamma-ray imaging detector measures the energy, centroids, and depth of interaction of the gamma-ray. DOI enhanced charge dividing readouts were used to measure the depth of interaction.
Keywords
Monte Carlo methods; coating techniques; gamma-ray detection; geometry; lutetium compounds; photomultipliers; position sensitive particle detectors; positron emission tomography; reflectivity; solid scintillation detectors; yttrium compounds; DOI; LSO crystals; LYSO; Lu2SiO5; Lu2YSiO5; Monte Carlo simulations; PET detector; depth of interaction resolution; energy interaction resolution; gamma-ray imaging detectors; geometry; monolithic crystals; optical photons; position sensitive photomultiplier tube; reflectivity; scintillation crystal coating; scintillation light transport; surface coating; Coatings; Energy resolution; Gamma ray detection; Gamma ray detectors; Geometry; Image resolution; Nuclear imaging; Optical scattering; Solid scintillation detectors; Spatial resolution; Crystal geometry; gamma ray imaging; interaction depth; monolithic scintillator; surface coating;
fLanguage
English
Journal_Title
Nuclear Science, IEEE Transactions on
Publisher
ieee
ISSN
0018-9499
Type
jour
DOI
10.1109/TNS.2008.920254
Filename
4545152
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